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March 12, 2026Nanoscale0 citations

Bioinspired multi-compartment mesoporous nanoreactors: modular assembly and functional applications

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QLQianhui LiuHWH. WangYMYuzhu Ma

Key Points

  • This review explores bioinspired multi-compartment nanoreactors, focusing on their design and functional applications in key fields.
  • Overview of preparation strategies for multi-compartment structures using different substrates like carbon and silicon.
  • Discussion of advantages of multi-chamber nanoreactors in catalysis, energy storage, and biomedical applications.
  • Examination of innovative technologies such as 3D printing for adjusting designs in nanotechnology.
  • Highlighted the synergistic effects of multi-chamber structures on catalytic efficiency and selectivity.
  • Identified the potential for improved drug delivery accuracy via advanced nanoreactor designs.
  • Outlined future research opportunities for autonomous nano-robots capable of complex in vivo tasks.

Abstract

Biomimetic multi-compartment nanoreactors (BMNRs) have emerged as a highly active and cutting-edge research direction in materials science and chemistry. Inspired by the multi-chamber structure and function of biological systems such as cells, the synergistic improvement of catalytic efficiency, catalytic selectivity, and drug delivery accuracy can be achieved by precisely regulating the number, scale, shape, and combination of chambers within the multi-chamber structure. This review first introduces strategies for preparing multi-compartment structures based on different substrates (including carbon, silicon, and metal compounds). Subsequently, the specific advantages of multi-chamber structures (including independent, isolated and interconnected multi-compartment structures) in catalysis, energy storage, and biomedical fields are discussed. Finally, the future opportunities of multi-chamber nanoreactors are outlined. This review emphasizes the advantages of emerging technologies, such as 3D printing, in adjusting multi-chamber structures and designs in nanotechnology and the development of nano-robots capable of autonomous navigation and performing complex tasks in vivo that can overcome the technical bottleneck of drug delivery.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/69b2585696eeacc4fcec7d49https://doi.org/10.1039/d6nr00015k
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